Tanned and Synthetic Leather Classification Based on Images Texture with Convolutional Neural Network

Author:

Faiz Faadihilah Ahnaf,Azhari Ahmad

Abstract

Tanned leather is an output from complex processes called tanning. Leather tanning is an important step that used to protect the fiber or protein structure of animal’s skin. Another reason of tanning process is to prevent the animal’s skin from any defect or rot. After the tanning is complete, the leather can be applied to produce a wide variety of leather products. Thus, the leather prices usually more expensive because it takes longer time in process. Another way to get cheaper price is make non-animal leather that usually known as synthetic or imitation leather. The purpose of this paper is to classify the tanned leather and synthetic leather by using Convolutional Neural Network. The tanned leather consist of cow, goat and sheep leathers. The proposed method will classify into four class, they are cow, goat, sheep and synthetic leathers. In each class consist of 160 images with 448x448 pixels size as the input data. With CNN method, this research shows a good result for the accuracy about 92.1%.

Publisher

State University of Malang (UM)

Subject

General Earth and Planetary Sciences,General Environmental Science

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Valorization of fruit vegetable waste for semi-synthetic leather;Iranian Polymer Journal;2024-02-07

2. A Robust Real-time Leather Defect Segmentation Using YOLO;2023 18th Iberian Conference on Information Systems and Technologies (CISTI);2023-06-20

3. An improved automatic defect identification system on natural leather via generative adversarial network;International Journal of Computer Integrated Manufacturing;2022-03-15

4. Lightweight network study of leather defect segmentation with Kronecker product multipath decoding;Mathematical Biosciences and Engineering;2022

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